Numerical Simulation of Crack Condition in Forging Products of M50 Bearing Steel Based on Processing Map Theory

  • Park, Joonhee
  • Han, Byeongchan
  • Kwon, Hyukjoon
  • Kim, Naksoo
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초록

The microstructure of forged products significantly impacts their properties, and defects or carbide distribution are not visible to the naked eye. Isothermal compression tests on M50 steel with a Gleeble 3500 tester were conducted to study microstructure behavior during forging. Tests examined the hot deformation behavior within a temperature range of 900-1200 ? and a strain rate range of 0.01-10 s(-1). Power dissipation efficiency (?) and flow instability (?), which are crucial processing map parameters, were employed to analyze the high-temperature deformation behavior of M50 steel. The 3D processing map determined the optimum forging conditions, indicating that hot working should start at an initial temperature of 1050 ? or higher and a strain rate of 1 s(-1), decreasing the strain rate and temperature as the strain increases. The 3D power dissipation efficiency map displayed an average value of 0.43 or higher at a strain rate of 0.1 s(-1) and a temperature of 1150 ? before reaching a strain rate of 0.8. The Finite Element Method (FEM) simulated results, revealing ? and ? distributions, and confirmed that microstructure observation during deformation matched the hot forging parameters. This approach can effectively predict microstructure changes during hot forging.

키워드

hot forging3D processing mapM50 steelintergranular crackHOT DEFORMATION-BEHAVIORALLOYMICROSTRUCTURECOMPRESSIONWORKABILITYINSTABILITYVALIDATIONSTABILITYEVOLUTIONWORKING
제목
Numerical Simulation of Crack Condition in Forging Products of M50 Bearing Steel Based on Processing Map Theory
저자
Park, JoonheeHan, ByeongchanKwon, HyukjoonKim, Naksoo
DOI
10.3390/met13050921
발행일
2023-05
유형
Article
저널명
Metals
13
5